A novel design for adjustable stiffness artificial tendon for the ankle joint of a bipedal robot: Modeling & simulation

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Abstract

Bipedal humanoid robots are expected to play a major role in the future. Performing bipedal locomotion requires high energy due to the high torque that needs to be provided by its legs' joints. Taking the WABIAN-2R as an example, it uses harmonic gears in its joint to increase the torque. However, using such a mechanism increases the weight of the legs and therefore increases energy consumption. Therefore, the idea of developing a mechanism with adjustable stiffness to be connected to the leg joint is introduced here. The proposed mechanism would have the ability to provide passive and active motion. The mechanism would be attached to the ankle pitch joint as an artificial tendon. Using computer simulations, the dynamical performance of the mechanism is analytically evaluated.

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CITATION STYLE

APA

Omer, A., Ghorbani, R., Hashimoto, K., Lim, H. O., & Takanishi, A. (2016). A novel design for adjustable stiffness artificial tendon for the ankle joint of a bipedal robot: Modeling & simulation. Machines, 4(1). https://doi.org/10.3390/machines4010001

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